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Measured Rare Voltage Sags and Clusters of Sags: Prediction Models Driven by the Intermittence Indices

Authors :
G. M. Casolino
M. de Santis
L. Di Stasio
C. Noce
P. Varilone
P. Verde
Source :
IEEE Open Access Journal of Power and Energy, Vol 11, Pp 231-240 (2024)
Publication Year :
2024
Publisher :
IEEE, 2024.

Abstract

The field measurement campaigns have revealed that voltage sags also occur as clusters and not only as rare phenomena. The clusters of sags represent a stochastic process due to their time dependence; the rare satisfy the requirements for a Poisson distribution process. To forecast both kinds of sags using the statistics of the measurements, different approaches are required. In this study, a general method for predicting both types of sags is proposed with a procedure that can be implemented automatically. The method uses intermittent indices to distinguish between the sites that have a prevalent number of rare sags and the sites where rare sags and clusters occurred. Based on this means of identification, the technique offers two distinct models for predicting each kind of sag. The final goal is to implement the procedure in a measurement system that can automatically pre-analyze the recorded sags and choose the best technique for prediction depending on the type of sag. The first results were satisfying with forecast errors reduced in comparison with those obtained without the proposed procedure.

Details

Language :
English
ISSN :
26877910
Volume :
11
Database :
Directory of Open Access Journals
Journal :
IEEE Open Access Journal of Power and Energy
Publication Type :
Academic Journal
Accession number :
edsdoj.4a40f499b0bd458f93150fc8256a4e7c
Document Type :
article
Full Text :
https://doi.org/10.1109/OAJPE.2024.3397365